Sintering Characteristics and Microwave Dielectric Properties of Li2Mg3Ti0.95(Mg1/3Sb2/3)0.05O6 Ceramic Doped with LiF for LTCC Applications

被引:0
作者
Y. K. Yang
H. L. Pan
H. T. Wu
机构
[1] University of Jinan,School of Materials Science and Engineering
来源
Journal of Electronic Materials | 2019年 / 48卷
关键词
Li; Mg; Ti; (Mg; Sb; ); O; LiF; microwave dielectric ceramics; LTCC;
D O I
暂无
中图分类号
学科分类号
摘要
In the current study, LiF as a sintering agent was chosen to achieve the low temperature sintering of Li2Mg3Ti0.95(Mg1/3Sb2/3)0.05O6 (LMTS) ceramics. LMTS ceramics with 1–4 wt.% LiF additions were prepared by a solid-state reaction. The influence of LiF-doping on x-ray diffraction patterns, apparent density, micro-morphology and microwave dielectric properties were discussed in depth. With different LiF additions, LMTS ceramics show a rock salt structured pure phase. A small amount of LiF addition can significantly promote sintering due to the liquid-phase sintering. Compact samples (> 95% of theoretical density) can be obtained at 950°C for LMTS with 2–4 wt.% LiF addition ceramics. Particularly, LMTS with 4 wt.% LiF additional ceramic exhibited optimal microwave dielectric properties at 950°C (εr = 14.9, Q × f=68132 GHz and τf = − 39.24 ppm/°C). Moreover, LMTS ceramics possessed excellent chemical compatibility with silver, implying that the LMTS-LiF ceramic is a potential candidate for low temperature co-fired ceramic (LTCC).
引用
收藏
页码:2712 / 2717
页数:5
相关论文
共 50 条
  • [31] Effect of La2O3 addition on the microwave dielectric properties of Ba(Mg1/3Ta2/3)O3 ceramics
    Peng, Sen
    Wu, Mengqiang
    Xu, Jianming
    Huang, Tongcheng
    Luo, Gaofeng
    Yu, Jiankun
    Zhou, Jianhua
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2017, 28 (04) : 3349 - 3355
  • [32] Microstructure, crystallization, microwave properties of (Mg0.95Co0.05)2(Ti1−xSnx)O4 spinel-type solid solution for microwave applications
    Yuan-Bin Chen
    Yu Fan
    Journal of the Australian Ceramic Society, 2023, 59 : 1221 - 1229
  • [33] Sintering behavior and microwave dielectric properties of B2O3-La2O3-MgO-TiO2 based glass-ceramic for LTCC applications
    Ren, Haishen
    Dang, Mingzhao
    Wang, Huijun
    Xie, Tianyi
    Jiang, Shaohu
    Lin, Huixing
    Luo, Lan
    MATERIALS LETTERS, 2018, 210 : 113 - 116
  • [34] Effect of ZrO2 Doping on the Microwave Dielectric Properties of Ba(Mg1/3Nb2/3)O3 Ceramics
    Sen Peng
    Gaofeng Luo
    Mengqiang Wu
    Shengquan Yu
    Jianming Xu
    Tongcheng Huang
    Jianhua Zhou
    Journal of Electronic Materials, 2017, 46 : 2172 - 2178
  • [35] Low temperature sintering and microwave dielectric properties of CaSiO3-Al2O3 ceramics for LTCC applications
    Wang, Huanping
    He, Zuopeng
    Li, Denghao
    Lei, Ruoshan
    Chen, Jinmin
    Xu, Shiqing
    CERAMICS INTERNATIONAL, 2014, 40 (03) : 3895 - 3902
  • [36] Microwave dielectric properties and microstructures of Nb2O5-Zn0.95Mg0.05TiO3+0.25TiO2 ceramics with Bi2O3 addition
    Lee, Ying-Chieh
    Chiang, Cheng-Su
    Huang, Yen-Lin
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2010, 30 (04) : 963 - 970
  • [37] Crystal structure, Raman spectra, infrared spectra and microwave dielectric properties of Li2Mg3Ti1-x(Mg1/3Ta2/3)xO6 (0 ≤ x ≤ 0.2) solid solution ceramics
    Pan, H. L.
    Mao, Y. X.
    Yang, Y. K.
    Zhang, Y. W.
    Wu, H. T.
    MATERIALS RESEARCH BULLETIN, 2018, 105 : 296 - 305
  • [38] Microwave Dielectric Properties of Ca[(Li1/3Nb2/3)0.95Zr0.05]O3-δ-xTiO2 Ceramics
    Xiong, Gang
    LIQUID CRYSTALS AND RELATED MATERIALS II, 2012, 181-182 : 405 - 408
  • [39] Low temperature sintering mechanism for Li2Mg3SnO6 microwave dielectric ceramics
    Fu, Zhifen
    Li, Can
    Ma, Jianli
    Wu, Yilong
    MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2019, 250
  • [40] Influence of ZnO and Nb2O5 Additions on Sintering Behavior and Microwave Dielectric Properties of (Mg0.95Ca0.05)TiO3 Ceramics
    Luo, Chunya
    Hu, Mingzhe
    Huang, Qiuan
    Fu, Yang
    Gu, Haoshuang
    HIGH-PERFORMANCE CERAMICS VII, PTS 1 AND 2, 2012, 512-515 : 1184 - 1188